4.5 Article

Comparison of hyperpolarized 13C and non-hyperpolarized deuterium MRI approaches for imaging cerebral glucose metabolism at 4.7 T

期刊

MAGNETIC RESONANCE IN MEDICINE
卷 85, 期 4, 页码 1795-1804

出版社

WILEY
DOI: 10.1002/mrm.28612

关键词

brain; dynamic nuclear polarization; imaging; stable isotopes

资金

  1. National Institute of Diabetes and Digestive and Kidney Diseases [NIH R01DK115987]
  2. NIH Office of the Director [NIH S10OD023580]

向作者/读者索取更多资源

This study directly compared two isotopic metabolic imaging approaches, HP C-13 MRI and DMI, for imaging different segments of cerebral glucose metabolism at 4.7 T. The results showed that while HP-C-13 MRI had better SNR and spatial resolution compared to DMI, the latter provided maps of lactate and Glx production, albeit with poorer spectral discrimination.
Purpose The purpose of this study was to directly compare two isotopic metabolic imaging approaches, hyperpolarized (HP) C-13 MRI and deuterium metabolic imaging (DMI), for imaging specific closely related segments of cerebral glucose metabolism at 4.7 T. Methods Comparative HP-C-13 and DMI neuroimaging experiments were conducted consecutively in normal rats during the same scanning session. Localized conversions of [1-C-13]pyruvate and [6,6-H-2(2)]glucose to their respective downstream metabolic products were measured by spectroscopic imaging, using an identical 2D-CSI sequence with parameters optimized for the respective experiments. To facilitate direct comparison, a pair of substantially equivalent 2.5-cm double-tuned X/H-1 RF surface coils was developed. For improved results, multidimensional low-rank reconstruction was applied to denoise the raw DMI data. Results Localized conversion of HP [1-C-13]pyruvate to [1-C-13]lactate, and [6,6-H-2(2)]glucose to [3,3-H-2(2)]lactate and Glx-d (glutamate and glutamine), was detected in rat brain by spectroscopic imaging at 4.7 T. The SNR and spatial resolution of HP-C-13 MRI was superior to DMI but limited to a short time window, whereas the lengthy DMI acquisition yielded maps of not only lactate, but also Glx production, albeit with relatively poor spectral discrimination between metabolites at this field strength. Across the individual rats, there was an apparent inverse correlation between cerebral production of HP [1-C-13]lactate and Glx-d, along with a trend toward increased [3,3-H-2(2)]lactate. Conclusion The HP-C-13 MRI and DMI methods are both feasible at 4.7 T and have significant potential for metabolic imaging of specific segments of glucose metabolism.

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